Spectroscopic Investigations of Complex Electronic Interactions by Elemental Doping and Material Compositing of Cobalt Oxide for Enhanced Oxygen Evolution Reaction Activity

Author:

Huang Jinzhen1ORCID,Clark Adam H.2,Hales Natasha1,Borca Camelia Nicoleta2,Huthwelker Thomas2,Skoupy Radim3,Schmidt Thomas J.14,Fabbri Emiliana1ORCID

Affiliation:

1. Electrochemistry Laboratory Paul Scherrer Institute Villigen PSI CH‐5232 Switzerland

2. Photon Science Division Paul Scherrer Institute Villigen PSI CH‐5232 Switzerland

3. Group for Electron Microscopy and Diffraction Paul Scherrer Institute Villigen PSI CH‐5232 Switzerland

4. Institute for Physical Molecular Sciences ETH Zürich Zürich CH‐8093 Switzerland

Abstract

AbstractDoping and compositing are two universal design strategies used to engineer the electronic state of a material and mitigate its disadvantages. These two strategies are extensively applied to design efficient electrocatalysts for water splitting. Using cobalt oxide (CoO) as a model catalyst, it is proven that the oxygen evolution reaction (OER) performance can be progressively improved, first by Fe‐doping to form Fe‐CoO solid solution, and further by the addition of CeO2 to produce a Fe‐CoO/CeO2 composite. X‐ray absorption spectroscopy (XAS) reveals that distinct electronic interactions are induced by the processes of doping and compositing. Fe‐doping of CoO can break down the structural symmetry, changing the electronic structure of both Co and O species at the surface and decreasing the flat‐band potential (Vfb). In comparison, subsequent compositing of Fe‐CoO with CeO2 induces negligible electronic changes in the Fe‐CoO (as seen in ex situ characterizations), but significantly modifies the oxidative transformations of both Co and Fe under OER conditions. The spectroscopic investigations reveal that Fe‐doping and CeO2 compositing play different roles in modifying the electronic properties of CoO in its pristine state and during OER catalysis, in return, providing useful guidance for the design of more efficient electrocatalysts using these two strategies.

Funder

Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung

National Center of Competence in Research Materials’ Revolution: Computational Design and Discovery of Novel Materials

Publisher

Wiley

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